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95c3ee10bc
# Description - What does this PR do? Allows to generate JSON schema for subset of XCM in std builds - Why are these changes needed? To support XCM messages in CosmWasm contracts which require Schemars to generate contract clients - How were these changes implemented and what do they affect? We will use schema feature flag to build XCM pallet with JSON schema enabled # Checklist - [x] My PR includes a detailed description as outlined in the "Description" section above - [x] My PR follows the [labeling requirements](CONTRIBUTING.md#Process) of this project (at minimum one label for `T` required) - [x] I have made corresponding changes to the documentation (if applicable) - [x] I have added tests that prove my fix is effective or that my feature works (if applicable) - [x] If this PR alters any external APIs or interfaces used by Polkadot, the corresponding Polkadot PR is ready as well as the corresponding Cumulus PR (optional)
778 lines
28 KiB
Rust
778 lines
28 KiB
Rust
// Copyright (C) Parity Technologies (UK) Ltd.
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// This file is part of Polkadot.
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// Polkadot is free software: you can redistribute it and/or modify
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// it under the terms of the GNU General Public License as published by
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// the Free Software Foundation, either version 3 of the License, or
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// (at your option) any later version.
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// Polkadot is distributed in the hope that it will be useful,
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// but WITHOUT ANY WARRANTY; without even the implied warranty of
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// MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
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// GNU General Public License for more details.
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// You should have received a copy of the GNU General Public License
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// along with Polkadot. If not, see <http://www.gnu.org/licenses/>.
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//! XCM `MultiLocation` datatype.
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use super::{Junction, Junctions};
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use crate::{v2::MultiLocation as OldMultiLocation, VersionedMultiLocation};
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use core::{
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convert::{TryFrom, TryInto},
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result,
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};
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use parity_scale_codec::{Decode, Encode, MaxEncodedLen};
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use scale_info::TypeInfo;
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/// A relative path between state-bearing consensus systems.
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///
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/// A location in a consensus system is defined as an *isolatable state machine* held within global
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/// consensus. The location in question need not have a sophisticated consensus algorithm of its
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/// own; a single account within Ethereum, for example, could be considered a location.
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///
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/// A very-much non-exhaustive list of types of location include:
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/// - A (normal, layer-1) block chain, e.g. the Bitcoin mainnet or a parachain.
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/// - A layer-0 super-chain, e.g. the Polkadot Relay chain.
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/// - A layer-2 smart contract, e.g. an ERC-20 on Ethereum.
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/// - A logical functional component of a chain, e.g. a single instance of a pallet on a Frame-based
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/// Substrate chain.
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/// - An account.
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///
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/// A `MultiLocation` is a *relative identifier*, meaning that it can only be used to define the
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/// relative path between two locations, and cannot generally be used to refer to a location
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/// universally. It is comprised of an integer number of parents specifying the number of times to
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/// "escape" upwards into the containing consensus system and then a number of *junctions*, each
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/// diving down and specifying some interior portion of state (which may be considered a
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/// "sub-consensus" system).
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///
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/// This specific `MultiLocation` implementation uses a `Junctions` datatype which is a Rust `enum`
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/// in order to make pattern matching easier. There are occasions where it is important to ensure
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/// that a value is strictly an interior location, in those cases, `Junctions` may be used.
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///
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/// The `MultiLocation` value of `Null` simply refers to the interpreting consensus system.
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#[derive(
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Copy,
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Clone,
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Decode,
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Encode,
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Eq,
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PartialEq,
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Ord,
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PartialOrd,
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Debug,
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TypeInfo,
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MaxEncodedLen,
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serde::Serialize,
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serde::Deserialize,
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)]
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#[cfg_attr(feature = "json-schema", derive(schemars::JsonSchema))]
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pub struct MultiLocation {
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/// The number of parent junctions at the beginning of this `MultiLocation`.
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pub parents: u8,
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/// The interior (i.e. non-parent) junctions that this `MultiLocation` contains.
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pub interior: Junctions,
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}
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impl Default for MultiLocation {
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fn default() -> Self {
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Self { parents: 0, interior: Junctions::Here }
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}
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}
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/// A relative location which is constrained to be an interior location of the context.
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///
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/// See also `MultiLocation`.
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pub type InteriorMultiLocation = Junctions;
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impl MultiLocation {
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/// Creates a new `MultiLocation` with the given number of parents and interior junctions.
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pub fn new(parents: u8, interior: impl Into<Junctions>) -> MultiLocation {
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MultiLocation { parents, interior: interior.into() }
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}
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/// Consume `self` and return the equivalent `VersionedMultiLocation` value.
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pub const fn into_versioned(self) -> VersionedMultiLocation {
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VersionedMultiLocation::V3(self)
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}
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/// Creates a new `MultiLocation` with 0 parents and a `Here` interior.
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///
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/// The resulting `MultiLocation` can be interpreted as the "current consensus system".
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pub const fn here() -> MultiLocation {
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MultiLocation { parents: 0, interior: Junctions::Here }
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}
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/// Creates a new `MultiLocation` which evaluates to the parent context.
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pub const fn parent() -> MultiLocation {
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MultiLocation { parents: 1, interior: Junctions::Here }
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}
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/// Creates a new `MultiLocation` which evaluates to the grand parent context.
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pub const fn grandparent() -> MultiLocation {
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MultiLocation { parents: 2, interior: Junctions::Here }
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}
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/// Creates a new `MultiLocation` with `parents` and an empty (`Here`) interior.
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pub const fn ancestor(parents: u8) -> MultiLocation {
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MultiLocation { parents, interior: Junctions::Here }
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}
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/// Whether the `MultiLocation` has no parents and has a `Here` interior.
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pub const fn is_here(&self) -> bool {
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self.parents == 0 && self.interior.len() == 0
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}
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/// Remove the `NetworkId` value in any interior `Junction`s.
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pub fn remove_network_id(&mut self) {
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self.interior.remove_network_id();
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}
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/// Return a reference to the interior field.
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pub fn interior(&self) -> &Junctions {
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&self.interior
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}
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/// Return a mutable reference to the interior field.
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pub fn interior_mut(&mut self) -> &mut Junctions {
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&mut self.interior
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}
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/// Returns the number of `Parent` junctions at the beginning of `self`.
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pub const fn parent_count(&self) -> u8 {
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self.parents
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}
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/// Returns boolean indicating whether `self` contains only the specified amount of
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/// parents and no interior junctions.
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pub const fn contains_parents_only(&self, count: u8) -> bool {
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matches!(self.interior, Junctions::Here) && self.parents == count
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}
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/// Returns the number of parents and junctions in `self`.
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pub const fn len(&self) -> usize {
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self.parent_count() as usize + self.interior.len()
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}
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/// Returns the first interior junction, or `None` if the location is empty or contains only
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/// parents.
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pub fn first_interior(&self) -> Option<&Junction> {
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self.interior.first()
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}
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/// Returns last junction, or `None` if the location is empty or contains only parents.
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pub fn last(&self) -> Option<&Junction> {
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self.interior.last()
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}
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/// Splits off the first interior junction, returning the remaining suffix (first item in tuple)
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/// and the first element (second item in tuple) or `None` if it was empty.
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pub fn split_first_interior(self) -> (MultiLocation, Option<Junction>) {
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let MultiLocation { parents, interior: junctions } = self;
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let (suffix, first) = junctions.split_first();
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let multilocation = MultiLocation { parents, interior: suffix };
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(multilocation, first)
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}
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/// Splits off the last interior junction, returning the remaining prefix (first item in tuple)
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/// and the last element (second item in tuple) or `None` if it was empty or if `self` only
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/// contains parents.
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pub fn split_last_interior(self) -> (MultiLocation, Option<Junction>) {
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let MultiLocation { parents, interior: junctions } = self;
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let (prefix, last) = junctions.split_last();
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let multilocation = MultiLocation { parents, interior: prefix };
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(multilocation, last)
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}
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/// Mutates `self`, suffixing its interior junctions with `new`. Returns `Err` with `new` in
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/// case of overflow.
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pub fn push_interior(&mut self, new: impl Into<Junction>) -> result::Result<(), Junction> {
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self.interior.push(new)
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}
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/// Mutates `self`, prefixing its interior junctions with `new`. Returns `Err` with `new` in
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/// case of overflow.
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pub fn push_front_interior(
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&mut self,
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new: impl Into<Junction>,
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) -> result::Result<(), Junction> {
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self.interior.push_front(new)
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}
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/// Consumes `self` and returns a `MultiLocation` suffixed with `new`, or an `Err` with
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/// theoriginal value of `self` in case of overflow.
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pub fn pushed_with_interior(
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self,
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new: impl Into<Junction>,
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) -> result::Result<Self, (Self, Junction)> {
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match self.interior.pushed_with(new) {
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Ok(i) => Ok(MultiLocation { interior: i, parents: self.parents }),
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Err((i, j)) => Err((MultiLocation { interior: i, parents: self.parents }, j)),
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}
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}
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/// Consumes `self` and returns a `MultiLocation` prefixed with `new`, or an `Err` with the
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/// original value of `self` in case of overflow.
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pub fn pushed_front_with_interior(
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self,
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new: impl Into<Junction>,
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) -> result::Result<Self, (Self, Junction)> {
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match self.interior.pushed_front_with(new) {
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Ok(i) => Ok(MultiLocation { interior: i, parents: self.parents }),
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Err((i, j)) => Err((MultiLocation { interior: i, parents: self.parents }, j)),
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}
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}
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/// Returns the junction at index `i`, or `None` if the location is a parent or if the location
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/// does not contain that many elements.
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pub fn at(&self, i: usize) -> Option<&Junction> {
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let num_parents = self.parents as usize;
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if i < num_parents {
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return None
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}
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self.interior.at(i - num_parents)
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}
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/// Returns a mutable reference to the junction at index `i`, or `None` if the location is a
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/// parent or if it doesn't contain that many elements.
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pub fn at_mut(&mut self, i: usize) -> Option<&mut Junction> {
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let num_parents = self.parents as usize;
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if i < num_parents {
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return None
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}
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self.interior.at_mut(i - num_parents)
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}
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/// Decrements the parent count by 1.
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pub fn dec_parent(&mut self) {
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self.parents = self.parents.saturating_sub(1);
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}
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/// Removes the first interior junction from `self`, returning it
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/// (or `None` if it was empty or if `self` contains only parents).
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pub fn take_first_interior(&mut self) -> Option<Junction> {
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self.interior.take_first()
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}
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/// Removes the last element from `interior`, returning it (or `None` if it was empty or if
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/// `self` only contains parents).
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pub fn take_last(&mut self) -> Option<Junction> {
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self.interior.take_last()
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}
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/// Ensures that `self` has the same number of parents as `prefix`, its junctions begins with
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/// the junctions of `prefix` and that it has a single `Junction` item following.
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/// If so, returns a reference to this `Junction` item.
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///
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/// # Example
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/// ```rust
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/// # use staging_xcm::v3::{Junctions::*, Junction::*, MultiLocation};
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/// let mut m = MultiLocation::new(1, X2(PalletInstance(3), OnlyChild));
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/// assert_eq!(
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/// m.match_and_split(&MultiLocation::new(1, X1(PalletInstance(3)))),
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/// Some(&OnlyChild),
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/// );
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/// assert_eq!(m.match_and_split(&MultiLocation::new(1, Here)), None);
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/// ```
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pub fn match_and_split(&self, prefix: &MultiLocation) -> Option<&Junction> {
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if self.parents != prefix.parents {
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return None
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}
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self.interior.match_and_split(&prefix.interior)
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}
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pub fn starts_with(&self, prefix: &MultiLocation) -> bool {
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self.parents == prefix.parents && self.interior.starts_with(&prefix.interior)
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}
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/// Mutate `self` so that it is suffixed with `suffix`.
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///
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/// Does not modify `self` and returns `Err` with `suffix` in case of overflow.
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///
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/// # Example
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/// ```rust
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/// # use staging_xcm::v3::{Junctions::*, Junction::*, MultiLocation, Parent};
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/// let mut m: MultiLocation = (Parent, Parachain(21), 69u64).into();
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/// assert_eq!(m.append_with((Parent, PalletInstance(3))), Ok(()));
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/// assert_eq!(m, MultiLocation::new(1, X2(Parachain(21), PalletInstance(3))));
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/// ```
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pub fn append_with(&mut self, suffix: impl Into<Self>) -> Result<(), Self> {
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let prefix = core::mem::replace(self, suffix.into());
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match self.prepend_with(prefix) {
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Ok(()) => Ok(()),
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Err(prefix) => Err(core::mem::replace(self, prefix)),
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}
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}
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/// Consume `self` and return its value suffixed with `suffix`.
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///
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/// Returns `Err` with the original value of `self` and `suffix` in case of overflow.
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///
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/// # Example
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/// ```rust
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/// # use staging_xcm::v3::{Junctions::*, Junction::*, MultiLocation, Parent};
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/// let mut m: MultiLocation = (Parent, Parachain(21), 69u64).into();
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/// let r = m.appended_with((Parent, PalletInstance(3))).unwrap();
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/// assert_eq!(r, MultiLocation::new(1, X2(Parachain(21), PalletInstance(3))));
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/// ```
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pub fn appended_with(mut self, suffix: impl Into<Self>) -> Result<Self, (Self, Self)> {
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match self.append_with(suffix) {
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Ok(()) => Ok(self),
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Err(suffix) => Err((self, suffix)),
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}
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}
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/// Mutate `self` so that it is prefixed with `prefix`.
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///
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/// Does not modify `self` and returns `Err` with `prefix` in case of overflow.
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///
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/// # Example
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/// ```rust
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/// # use staging_xcm::v3::{Junctions::*, Junction::*, MultiLocation, Parent};
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/// let mut m: MultiLocation = (Parent, Parent, PalletInstance(3)).into();
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/// assert_eq!(m.prepend_with((Parent, Parachain(21), OnlyChild)), Ok(()));
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/// assert_eq!(m, MultiLocation::new(1, X1(PalletInstance(3))));
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/// ```
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pub fn prepend_with(&mut self, prefix: impl Into<Self>) -> Result<(), Self> {
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// prefix self (suffix)
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// P .. P I .. I p .. p i .. i
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let mut prefix = prefix.into();
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let prepend_interior = prefix.interior.len().saturating_sub(self.parents as usize);
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let final_interior = self.interior.len().saturating_add(prepend_interior);
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if final_interior > super::junctions::MAX_JUNCTIONS {
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return Err(prefix)
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}
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let suffix_parents = (self.parents as usize).saturating_sub(prefix.interior.len());
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let final_parents = (prefix.parents as usize).saturating_add(suffix_parents);
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if final_parents > 255 {
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return Err(prefix)
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}
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// cancel out the final item on the prefix interior for one of the suffix's parents.
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while self.parents > 0 && prefix.take_last().is_some() {
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self.dec_parent();
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}
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// now we have either removed all suffix's parents or prefix interior.
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// this means we can combine the prefix's and suffix's remaining parents/interior since
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// we know that with at least one empty, the overall order will be respected:
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// prefix self (suffix)
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// P .. P (I) p .. p i .. i => P + p .. (no I) i
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// -- or --
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// P .. P I .. I (p) i .. i => P (no p) .. I + i
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self.parents = self.parents.saturating_add(prefix.parents);
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for j in prefix.interior.into_iter().rev() {
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self.push_front_interior(j)
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.expect("final_interior no greater than MAX_JUNCTIONS; qed");
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}
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Ok(())
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}
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/// Consume `self` and return its value prefixed with `prefix`.
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///
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/// Returns `Err` with the original value of `self` and `prefix` in case of overflow.
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///
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/// # Example
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/// ```rust
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/// # use staging_xcm::v3::{Junctions::*, Junction::*, MultiLocation, Parent};
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/// let m: MultiLocation = (Parent, Parent, PalletInstance(3)).into();
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/// let r = m.prepended_with((Parent, Parachain(21), OnlyChild)).unwrap();
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/// assert_eq!(r, MultiLocation::new(1, X1(PalletInstance(3))));
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/// ```
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pub fn prepended_with(mut self, prefix: impl Into<Self>) -> Result<Self, (Self, Self)> {
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match self.prepend_with(prefix) {
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Ok(()) => Ok(self),
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Err(prefix) => Err((self, prefix)),
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}
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}
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/// Mutate `self` so that it represents the same location from the point of view of `target`.
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/// The context of `self` is provided as `context`.
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///
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/// Does not modify `self` in case of overflow.
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pub fn reanchor(
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&mut self,
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target: &MultiLocation,
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context: InteriorMultiLocation,
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) -> Result<(), ()> {
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// TODO: https://github.com/paritytech/polkadot/issues/4489 Optimize this.
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// 1. Use our `context` to figure out how the `target` would address us.
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let inverted_target = context.invert_target(target)?;
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// 2. Prepend `inverted_target` to `self` to get self's location from the perspective of
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// `target`.
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self.prepend_with(inverted_target).map_err(|_| ())?;
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// 3. Given that we know some of `target` context, ensure that any parents in `self` are
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// strictly needed.
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self.simplify(target.interior());
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Ok(())
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}
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/// Consume `self` and return a new value representing the same location from the point of view
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/// of `target`. The context of `self` is provided as `context`.
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///
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/// Returns the original `self` in case of overflow.
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pub fn reanchored(
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mut self,
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target: &MultiLocation,
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context: InteriorMultiLocation,
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) -> Result<Self, Self> {
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match self.reanchor(target, context) {
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Ok(()) => Ok(self),
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Err(()) => Err(self),
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}
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}
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/// Remove any unneeded parents/junctions in `self` based on the given context it will be
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/// interpreted in.
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pub fn simplify(&mut self, context: &Junctions) {
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if context.len() < self.parents as usize {
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// Not enough context
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return
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}
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while self.parents > 0 {
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let maybe = context.at(context.len() - (self.parents as usize));
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match (self.interior.first(), maybe) {
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(Some(i), Some(j)) if i == j => {
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self.interior.take_first();
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self.parents -= 1;
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},
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_ => break,
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}
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}
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}
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/// Return the MultiLocation subsection identifying the chain that `self` points to.
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pub fn chain_location(&self) -> MultiLocation {
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let mut clone = *self;
|
|
// start popping junctions until we reach chain identifier
|
|
while let Some(j) = clone.last() {
|
|
if matches!(j, Junction::Parachain(_) | Junction::GlobalConsensus(_)) {
|
|
// return chain subsection
|
|
return clone
|
|
} else {
|
|
(clone, _) = clone.split_last_interior();
|
|
}
|
|
}
|
|
MultiLocation::new(clone.parents, Junctions::Here)
|
|
}
|
|
}
|
|
|
|
impl TryFrom<OldMultiLocation> for MultiLocation {
|
|
type Error = ();
|
|
fn try_from(x: OldMultiLocation) -> result::Result<Self, ()> {
|
|
Ok(MultiLocation { parents: x.parents, interior: x.interior.try_into()? })
|
|
}
|
|
}
|
|
|
|
/// A unit struct which can be converted into a `MultiLocation` of `parents` value 1.
|
|
#[derive(Clone, Copy, PartialEq, Eq, PartialOrd, Ord, Debug)]
|
|
pub struct Parent;
|
|
impl From<Parent> for MultiLocation {
|
|
fn from(_: Parent) -> Self {
|
|
MultiLocation { parents: 1, interior: Junctions::Here }
|
|
}
|
|
}
|
|
|
|
/// A tuple struct which can be converted into a `MultiLocation` of `parents` value 1 with the inner
|
|
/// interior.
|
|
#[derive(Clone, PartialEq, Eq, PartialOrd, Ord, Debug)]
|
|
pub struct ParentThen(pub Junctions);
|
|
impl From<ParentThen> for MultiLocation {
|
|
fn from(ParentThen(interior): ParentThen) -> Self {
|
|
MultiLocation { parents: 1, interior }
|
|
}
|
|
}
|
|
|
|
/// A unit struct which can be converted into a `MultiLocation` of the inner `parents` value.
|
|
#[derive(Clone, Copy, PartialEq, Eq, PartialOrd, Ord, Debug)]
|
|
pub struct Ancestor(pub u8);
|
|
impl From<Ancestor> for MultiLocation {
|
|
fn from(Ancestor(parents): Ancestor) -> Self {
|
|
MultiLocation { parents, interior: Junctions::Here }
|
|
}
|
|
}
|
|
|
|
/// A unit struct which can be converted into a `MultiLocation` of the inner `parents` value and the
|
|
/// inner interior.
|
|
#[derive(Clone, PartialEq, Eq, PartialOrd, Ord, Debug)]
|
|
pub struct AncestorThen<Interior>(pub u8, pub Interior);
|
|
impl<Interior: Into<Junctions>> From<AncestorThen<Interior>> for MultiLocation {
|
|
fn from(AncestorThen(parents, interior): AncestorThen<Interior>) -> Self {
|
|
MultiLocation { parents, interior: interior.into() }
|
|
}
|
|
}
|
|
|
|
xcm_procedural::impl_conversion_functions_for_multilocation_v3!();
|
|
|
|
#[cfg(test)]
|
|
mod tests {
|
|
use crate::v3::prelude::*;
|
|
use parity_scale_codec::{Decode, Encode};
|
|
|
|
#[test]
|
|
fn conversion_works() {
|
|
let x: MultiLocation = Parent.into();
|
|
assert_eq!(x, MultiLocation { parents: 1, interior: Here });
|
|
// let x: MultiLocation = (Parent,).into();
|
|
// assert_eq!(x, MultiLocation { parents: 1, interior: Here });
|
|
// let x: MultiLocation = (Parent, Parent).into();
|
|
// assert_eq!(x, MultiLocation { parents: 2, interior: Here });
|
|
let x: MultiLocation = (Parent, Parent, OnlyChild).into();
|
|
assert_eq!(x, MultiLocation { parents: 2, interior: OnlyChild.into() });
|
|
let x: MultiLocation = OnlyChild.into();
|
|
assert_eq!(x, MultiLocation { parents: 0, interior: OnlyChild.into() });
|
|
let x: MultiLocation = (OnlyChild,).into();
|
|
assert_eq!(x, MultiLocation { parents: 0, interior: OnlyChild.into() });
|
|
}
|
|
|
|
#[test]
|
|
fn simplify_basic_works() {
|
|
let mut location: MultiLocation =
|
|
(Parent, Parent, Parachain(1000), PalletInstance(42), GeneralIndex(69)).into();
|
|
let context = X2(Parachain(1000), PalletInstance(42));
|
|
let expected = GeneralIndex(69).into();
|
|
location.simplify(&context);
|
|
assert_eq!(location, expected);
|
|
|
|
let mut location: MultiLocation = (Parent, PalletInstance(42), GeneralIndex(69)).into();
|
|
let context = X1(PalletInstance(42));
|
|
let expected = GeneralIndex(69).into();
|
|
location.simplify(&context);
|
|
assert_eq!(location, expected);
|
|
|
|
let mut location: MultiLocation = (Parent, PalletInstance(42), GeneralIndex(69)).into();
|
|
let context = X2(Parachain(1000), PalletInstance(42));
|
|
let expected = GeneralIndex(69).into();
|
|
location.simplify(&context);
|
|
assert_eq!(location, expected);
|
|
|
|
let mut location: MultiLocation =
|
|
(Parent, Parent, Parachain(1000), PalletInstance(42), GeneralIndex(69)).into();
|
|
let context = X3(OnlyChild, Parachain(1000), PalletInstance(42));
|
|
let expected = GeneralIndex(69).into();
|
|
location.simplify(&context);
|
|
assert_eq!(location, expected);
|
|
}
|
|
|
|
#[test]
|
|
fn simplify_incompatible_location_fails() {
|
|
let mut location: MultiLocation =
|
|
(Parent, Parent, Parachain(1000), PalletInstance(42), GeneralIndex(69)).into();
|
|
let context = X3(Parachain(1000), PalletInstance(42), GeneralIndex(42));
|
|
let expected =
|
|
(Parent, Parent, Parachain(1000), PalletInstance(42), GeneralIndex(69)).into();
|
|
location.simplify(&context);
|
|
assert_eq!(location, expected);
|
|
|
|
let mut location: MultiLocation =
|
|
(Parent, Parent, Parachain(1000), PalletInstance(42), GeneralIndex(69)).into();
|
|
let context = X1(Parachain(1000));
|
|
let expected =
|
|
(Parent, Parent, Parachain(1000), PalletInstance(42), GeneralIndex(69)).into();
|
|
location.simplify(&context);
|
|
assert_eq!(location, expected);
|
|
}
|
|
|
|
#[test]
|
|
fn reanchor_works() {
|
|
let mut id: MultiLocation = (Parent, Parachain(1000), GeneralIndex(42)).into();
|
|
let context = Parachain(2000).into();
|
|
let target = (Parent, Parachain(1000)).into();
|
|
let expected = GeneralIndex(42).into();
|
|
id.reanchor(&target, context).unwrap();
|
|
assert_eq!(id, expected);
|
|
}
|
|
|
|
#[test]
|
|
fn encode_and_decode_works() {
|
|
let m = MultiLocation {
|
|
parents: 1,
|
|
interior: X2(Parachain(42), AccountIndex64 { network: None, index: 23 }),
|
|
};
|
|
let encoded = m.encode();
|
|
assert_eq!(encoded, [1, 2, 0, 168, 2, 0, 92].to_vec());
|
|
let decoded = MultiLocation::decode(&mut &encoded[..]);
|
|
assert_eq!(decoded, Ok(m));
|
|
}
|
|
|
|
#[test]
|
|
fn match_and_split_works() {
|
|
let m = MultiLocation {
|
|
parents: 1,
|
|
interior: X2(Parachain(42), AccountIndex64 { network: None, index: 23 }),
|
|
};
|
|
assert_eq!(m.match_and_split(&MultiLocation { parents: 1, interior: Here }), None);
|
|
assert_eq!(
|
|
m.match_and_split(&MultiLocation { parents: 1, interior: X1(Parachain(42)) }),
|
|
Some(&AccountIndex64 { network: None, index: 23 })
|
|
);
|
|
assert_eq!(m.match_and_split(&m), None);
|
|
}
|
|
|
|
#[test]
|
|
fn append_with_works() {
|
|
let acc = AccountIndex64 { network: None, index: 23 };
|
|
let mut m = MultiLocation { parents: 1, interior: X1(Parachain(42)) };
|
|
assert_eq!(m.append_with(X2(PalletInstance(3), acc)), Ok(()));
|
|
assert_eq!(
|
|
m,
|
|
MultiLocation { parents: 1, interior: X3(Parachain(42), PalletInstance(3), acc) }
|
|
);
|
|
|
|
// cannot append to create overly long multilocation
|
|
let acc = AccountIndex64 { network: None, index: 23 };
|
|
let m = MultiLocation {
|
|
parents: 254,
|
|
interior: X5(Parachain(42), OnlyChild, OnlyChild, OnlyChild, OnlyChild),
|
|
};
|
|
let suffix: MultiLocation = (PalletInstance(3), acc, OnlyChild, OnlyChild).into();
|
|
assert_eq!(m.clone().append_with(suffix), Err(suffix));
|
|
}
|
|
|
|
#[test]
|
|
fn prepend_with_works() {
|
|
let mut m = MultiLocation {
|
|
parents: 1,
|
|
interior: X2(Parachain(42), AccountIndex64 { network: None, index: 23 }),
|
|
};
|
|
assert_eq!(m.prepend_with(MultiLocation { parents: 1, interior: X1(OnlyChild) }), Ok(()));
|
|
assert_eq!(
|
|
m,
|
|
MultiLocation {
|
|
parents: 1,
|
|
interior: X2(Parachain(42), AccountIndex64 { network: None, index: 23 })
|
|
}
|
|
);
|
|
|
|
// cannot prepend to create overly long multilocation
|
|
let mut m = MultiLocation { parents: 254, interior: X1(Parachain(42)) };
|
|
let prefix = MultiLocation { parents: 2, interior: Here };
|
|
assert_eq!(m.prepend_with(prefix), Err(prefix));
|
|
|
|
let prefix = MultiLocation { parents: 1, interior: Here };
|
|
assert_eq!(m.prepend_with(prefix), Ok(()));
|
|
assert_eq!(m, MultiLocation { parents: 255, interior: X1(Parachain(42)) });
|
|
}
|
|
|
|
#[test]
|
|
fn double_ended_ref_iteration_works() {
|
|
let m = X3(Parachain(1000), Parachain(3), PalletInstance(5));
|
|
let mut iter = m.iter();
|
|
|
|
let first = iter.next().unwrap();
|
|
assert_eq!(first, &Parachain(1000));
|
|
let third = iter.next_back().unwrap();
|
|
assert_eq!(third, &PalletInstance(5));
|
|
let second = iter.next_back().unwrap();
|
|
assert_eq!(iter.next(), None);
|
|
assert_eq!(iter.next_back(), None);
|
|
assert_eq!(second, &Parachain(3));
|
|
|
|
let res = Here
|
|
.pushed_with(*first)
|
|
.unwrap()
|
|
.pushed_with(*second)
|
|
.unwrap()
|
|
.pushed_with(*third)
|
|
.unwrap();
|
|
assert_eq!(m, res);
|
|
|
|
// make sure there's no funny business with the 0 indexing
|
|
let m = Here;
|
|
let mut iter = m.iter();
|
|
|
|
assert_eq!(iter.next(), None);
|
|
assert_eq!(iter.next_back(), None);
|
|
}
|
|
|
|
#[test]
|
|
fn chain_location_works() {
|
|
// Relay-chain or parachain context pointing to local resource,
|
|
let relay_to_local = MultiLocation::new(0, (PalletInstance(42), GeneralIndex(42)));
|
|
assert_eq!(relay_to_local.chain_location(), MultiLocation::here());
|
|
|
|
// Relay-chain context pointing to child parachain,
|
|
let relay_to_child =
|
|
MultiLocation::new(0, (Parachain(42), PalletInstance(42), GeneralIndex(42)));
|
|
let expected = MultiLocation::new(0, Parachain(42));
|
|
assert_eq!(relay_to_child.chain_location(), expected);
|
|
|
|
// Relay-chain context pointing to different consensus relay,
|
|
let relay_to_remote_relay =
|
|
MultiLocation::new(1, (GlobalConsensus(Kusama), PalletInstance(42), GeneralIndex(42)));
|
|
let expected = MultiLocation::new(1, GlobalConsensus(Kusama));
|
|
assert_eq!(relay_to_remote_relay.chain_location(), expected);
|
|
|
|
// Relay-chain context pointing to different consensus parachain,
|
|
let relay_to_remote_para = MultiLocation::new(
|
|
1,
|
|
(GlobalConsensus(Kusama), Parachain(42), PalletInstance(42), GeneralIndex(42)),
|
|
);
|
|
let expected = MultiLocation::new(1, (GlobalConsensus(Kusama), Parachain(42)));
|
|
assert_eq!(relay_to_remote_para.chain_location(), expected);
|
|
|
|
// Parachain context pointing to relay chain,
|
|
let para_to_relay = MultiLocation::new(1, (PalletInstance(42), GeneralIndex(42)));
|
|
assert_eq!(para_to_relay.chain_location(), MultiLocation::parent());
|
|
|
|
// Parachain context pointing to sibling parachain,
|
|
let para_to_sibling =
|
|
MultiLocation::new(1, (Parachain(42), PalletInstance(42), GeneralIndex(42)));
|
|
let expected = MultiLocation::new(1, Parachain(42));
|
|
assert_eq!(para_to_sibling.chain_location(), expected);
|
|
|
|
// Parachain context pointing to different consensus relay,
|
|
let para_to_remote_relay =
|
|
MultiLocation::new(2, (GlobalConsensus(Kusama), PalletInstance(42), GeneralIndex(42)));
|
|
let expected = MultiLocation::new(2, GlobalConsensus(Kusama));
|
|
assert_eq!(para_to_remote_relay.chain_location(), expected);
|
|
|
|
// Parachain context pointing to different consensus parachain,
|
|
let para_to_remote_para = MultiLocation::new(
|
|
2,
|
|
(GlobalConsensus(Kusama), Parachain(42), PalletInstance(42), GeneralIndex(42)),
|
|
);
|
|
let expected = MultiLocation::new(2, (GlobalConsensus(Kusama), Parachain(42)));
|
|
assert_eq!(para_to_remote_para.chain_location(), expected);
|
|
}
|
|
|
|
#[test]
|
|
fn conversion_from_other_types_works() {
|
|
use crate::v2;
|
|
use core::convert::TryInto;
|
|
|
|
fn takes_multilocation<Arg: Into<MultiLocation>>(_arg: Arg) {}
|
|
|
|
takes_multilocation(Parent);
|
|
takes_multilocation(Here);
|
|
takes_multilocation(X1(Parachain(42)));
|
|
takes_multilocation((Ancestor(255), PalletInstance(8)));
|
|
takes_multilocation((Ancestor(5), Parachain(1), PalletInstance(3)));
|
|
takes_multilocation((Ancestor(2), Here));
|
|
takes_multilocation(AncestorThen(
|
|
3,
|
|
X2(Parachain(43), AccountIndex64 { network: None, index: 155 }),
|
|
));
|
|
takes_multilocation((Parent, AccountId32 { network: None, id: [0; 32] }));
|
|
takes_multilocation((Parent, Here));
|
|
takes_multilocation(ParentThen(X1(Parachain(75))));
|
|
takes_multilocation([Parachain(100), PalletInstance(3)]);
|
|
|
|
assert_eq!(
|
|
v2::MultiLocation::from(v2::Junctions::Here).try_into(),
|
|
Ok(MultiLocation::here())
|
|
);
|
|
assert_eq!(v2::MultiLocation::from(v2::Parent).try_into(), Ok(MultiLocation::parent()));
|
|
assert_eq!(
|
|
v2::MultiLocation::from((v2::Parent, v2::Parent, v2::Junction::GeneralIndex(42u128),))
|
|
.try_into(),
|
|
Ok(MultiLocation { parents: 2, interior: X1(GeneralIndex(42u128)) }),
|
|
);
|
|
}
|
|
}
|